IP Library Granted Patent US 7,449,047
Granted Patent B2
US 7,449,047 · App. 10/519,555 · Granted Nov 11, 2008

Method and device for separating a gas flow using a membrane for enriching at least one gas component in the gas flow

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,449,047
App. No.
10/519,555
Granted
Nov 11, 2008
Kind
B2
Abstract

A membrane separation process for the enrichment of at least one gas component in a gas flow, especially for the oxygen enrichment of the air and/or for the enrichment of carbon dioxide using a membrane separation device ( 10 ), which is a part of a membrane separation unit ( 2 ) and includes at least one membrane. The gas is separated into a retentate ( 8 ), which is discharged on the retentate side ( 12 ) of the membrane, and a permeate ( 9 ), which is discharged on the permeate side ( 11 ) of the membrane. To allow the separation of gases or the enrichment of a gas component in a gas flow at a low energy consumption rate and at low investment and production costs, the pressure of the gas stream is lowered before entering the membrane separation unit ( 2 ) so that pressure on the permeate side ( 11 ) is lower as compared with the inlet pressure.

Claims (30)

1. A membrane separation process for the enrichment of oxygen in an air flow using a membrane separation system with a membrane separation unit having at least one membrane for separation of the air flow into a retentate, which is discharged on a retentate side of the at least one membrane, and a permeate, which is discharged on a permeate side of the at least one membrane, comprising the steps of:

drawing the air flow into the membrane separation system directly from the atmosphere, compressing the air flow and then delivering the compressed air flow to the membrane separation unit at an absolute pressure of 1.35 to 1.5 bar,

permeating oxygen through the at least one membrane using a solubility-diffusion mechanism so as to enrich the oxygen concentration of the permeate by 22 to 45 volume percent, and

lowering the pressure on the permeate side of the at least one membrane and discharging the permeate from the membrane separation unit at an absolute pressure of 0.4 to 0.85 bar.

2. The membrane separation process according to claim 1 , wherein at least one of a volume of the permeate stream and a concentration of the component of the air flow that is enriched is controlled by lowering the pressure level on the permeate side.

3. The membrane separation process according to claim 1 , wherein the process is performed in a single-stage.

4. The membrane separation process according to claim 1 , wherein a pressure difference between the air flow and the retentate does not exceed 1 bar.

5. The membrane separation process according to claim 1 , wherein the permeate which is enriched is oxygen, the oxygen being enriched to a concentration of 22 to 45 Vol.%.

6. The membrane separation process according to claim 1 , wherein the membrane separation device used comprises at least one of a pocket module, a plate module and a hollow fiber module.

7. The membrane separation process according to claim 1 , wherein the air flow is divided in at least two streams and split through at least one of a plurality of different parallel membrane separation devices and membrane separation units installed in a membrane separation system.

8. The membrane separation process according to claim 1 , wherein, before entering the membrane separation unit, the air flow is cleaned of at least one of particles, oils and fat.

9. The membrane separation process according to claim 1 , wherein, before entering the membrane separation unit, the temperature of the air flow is changed by about 10° C. to 25° C.

10. The membrane separation process according to claim 1 , wherein, before entering the membrane separation unit, the air flow is freed of condensable parts.

11. The membrane separation process according to claim 1 , wherein the separation of the air flow in the membrane separation unit is performed at ambient temperature.

12. The membrane separation process according to claim 1 , wherein the pressure of at least one of the inlet pressure of the air flow and the outlet pressure of the retentate and the outlet pressure of the permeate is changed in a single-stage.

13. A membrane separation process for the enrichment of oxygen in an air flow using a membrane separation system with a membrane separation unit having at least one membrane for separation of the air flow into a retentate, which is discharged on a retentate side of the at least one membrane, and a permeate, which is discharged on a permeate side of the at least one membrane, comprising the steps of:

drawing the air flow into the membrane separation system directly from the atmosphere, compressing the air flow and then delivering the compressed air flow to the membrane separation unit at an absolute pressure of 1.35 to 1.5 bar,

permeating oxygen through the at least one membrane using a solubility-diffusion mechanism so as to enrich the oxygen concentration of the permeate by 22 to 45 volume percent, and

lowering the pressure on the permeate side of the at least one membrane and discharging the permeate from the membrane separation unit at an absolute pressure of 0.4 to 0.65 bar.

14. The membrane separation process according to claim 13 , wherein the pressure difference between the air flow and the retentate does not exceed 1 bar.

15. The membrane separation process according to claim 13 , wherein at least one of a volume of the permeate stream and the oxygen concentration of the air flow that is enriched is controlled by lowering the pressure level on the permeate side.

16. The membrane separation process according to claim 13 , wherein the oxygen is enriched to a concentration of 30 Vol.%.

17. The membrane separation process according to claim 13 , wherein the process is performed in a single-stage.

18. The membrane separation process according to claim 13 , wherein the air flow is divided in at least two streams and split through at least one of a plurality of different parallel membrane separation devices and membrane separating units installed in a membrane separation system.

19. The membrane separation process according to claim 13 , wherein the membrane separation device used comprises at least one of a pocket module and/or plate module and/or hollow fiber module.

20. The membrane separation process according to claim 13 , wherein before entering the membrane separation unit, the air flow is cleaned of at least one of particles, oils and fat.

21. The membrane separation process according to claim 13 , wherein before entering the membrane separation unit, the temperature of the air flow changed by about 10° C. to 25° C.

22. The membrane separation process according to claim 13 , wherein before entering the membrane separation unit, the air flow is freed of condensable parts.

23. The membrane separation process according to claim 13 , wherein the separation of the air flow in the membrane separation unit is performed at ambient temperature.

24. The membrane separation process according to claim 13 , wherein the pressure of at least one of the inlet pressure of the air flow and the outlet pressure of the retentate and the outlet pressure of the permeate is changed in a single-stage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 1, 2008
From: FRAUNHOFER-GESELLSCHAFT ZUR FOERDERUNG DER ANGEWANDTEN FORSCHUNG E. V.
To: BACKHAUS, CLEMENS; WERNEKE, HUBERT
Reel/Frame 021614/0574 →
Priority Claims (1)
DE 102 29 232 · Jun 28, 2002 · national
Continuity (1)
Related Publication 20050229778A1 · Oct 20, 2005